In this guide we will provide 22. Generate Parentheses LeetCode Solution with best time and space complexity. The solution to Generate Parentheses problem is provided in various programming languages like C++, Java and python. This will be helpful for you if you are preparing for placements, hackathon, interviews or practice purposes. The solutions provided here are very easy to follow and with detailed explanations.
Given n pairs of parentheses, write a function to generate all combinations of well-formed parentheses.
Example 1:
Input: n = 3
Output: [“((()))”,”(()())”,”(())()”,”()(())”,”()()()”]
Example 2:
Input: n = 1
Output: [“()”]
Constraints:
1 <= n <= 8
Complexity Analysis
Time Complexity: O(2^{2n})
Space Complexity: O(n)
22. Generate Parentheses LeetCode Solution in C++
class Solution {
public:
vector<string> generateParenthesis(int n) {
vector<string> ans;
dfs(n, n, "", ans);
return ans;
}
private:
void dfs(int l, int r, string&& path, vector<string>& ans) {
if (l == 0 && r == 0) {
ans.push_back(path);
return;
}
if (l > 0) {
path.push_back('(');
dfs(l - 1, r, std::move(path), ans);
path.pop_back();
}
if (l < r) {
path.push_back(')');
dfs(l, r - 1, std::move(path), ans);
path.pop_back();
}
}
}; /* code provided by PROGIEZ */
22. Generate Parentheses LeetCode Solution in Java
class Solution {
public List<String> generateParenthesis(int n) {
List<String> ans = new ArrayList<>();
dfs(n, n, new StringBuilder(), ans);
return ans;
}
private void dfs(int l, int r, StringBuilder sb, List<String> ans) {
if (l == 0 && r == 0) {
ans.add(sb.toString());
return;
}
if (l > 0) {
sb.append("(");
dfs(l - 1, r, sb, ans);
sb.deleteCharAt(sb.length() - 1);
}
if (l < r) {
sb.append(")");
dfs(l, r - 1, sb, ans);
sb.deleteCharAt(sb.length() - 1);
}
}
} // code provided by PROGIEZ
22. Generate Parentheses LeetCode Solution in Python
class Solution:
def generateParenthesis(self, n):
ans = []
def dfs(l: int, r: int, s: list[str]) -> None:
if l == 0 and r == 0:
ans.append(''.join(s))
if l > 0:
s.append('(')
dfs(l - 1, r, s)
s.pop()
if l < r:
s.append(')')
dfs(l, r - 1, s)
s.pop()
dfs(n, n, [])
return ans #code by PROGIEZ
